Elevator button tracking and localization for multi-storey navigation

Arpan Ghosh, Jeongwon Pyo, Sunghyeon Joo, Tae-Yong Kuc
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引用次数: 2

Abstract

Elevator button recognition in an indoor multi-storey environment has been a challenging task amidst the whole scenario of indoor navigation on a mobile robot. In this paper, we integrate various computer vision approaches for the task of button recognition and tracking in an indoor multi-storey environment. To overcome the problem of detecting elevator buttons, we have prepared a framework that uses various preprocessing techniques combined with object detection and tracking approaches to recognize the buttons. Initially, a single-shot object detector YOLOv3 locates the original positions of the target buttons using region over intersection based approach to produce bounding boxes over the required objects. Then we use a part-based tracking algorithm Deep-SORT that follows the detected buttons in realtime to counter the hard movements of the camera. lastly, we take the bounding box coordinate information of the detected buttons and make a semantic map, which can be used to recreate a complete layout of the button panel even with partially detected buttons or a frame consisting of partial button information.
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面向多层导航的电梯按钮跟踪与定位
在移动机器人室内导航的整个场景中,多层室内环境下的电梯按钮识别一直是一项具有挑战性的任务。在本文中,我们整合了各种计算机视觉方法来完成室内多层环境中按钮识别和跟踪的任务。为了克服电梯按钮的检测问题,我们准备了一个框架,该框架使用各种预处理技术结合物体检测和跟踪方法来识别按钮。最初,单镜头目标检测器YOLOv3使用基于区域交叉的方法来定位目标按钮的原始位置,从而在所需对象上生成边界框。然后,我们使用基于零件的跟踪算法Deep-SORT来实时跟踪检测到的按钮,以对抗相机的硬运动。最后,我们获取检测到的按钮的边界框坐标信息并制作语义图,该语义图可以用于重建按钮面板的完整布局,即使是部分检测到的按钮或由部分按钮信息组成的框架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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